172
Views
18
CrossRef citations to date
0
Altmetric
Reviews

Bioreactor-free tissue engineering: directed tissue assembly by centrifugal casting

, , &
Pages 143-152 | Published online: 14 Jan 2008

Bibliography

  • Ma P, Elisseeff J. Scaffolding in Tissue Engineering. NY: Taylor & Francis; 2005
  • Elisseeff J, Anseth K, Sims D, et al. Transdermal photopolymerization for minimally invasive implantation. Proc Natl Acad Sci USA 1999;96:3104-7
  • Prestwich GD, Shu XZ, Liu Y, et al. Injectable synthetic extracellular matrices for tissue engineering and repair. Adv Exp Med Biol 2006;585:125-33
  • Romanoff F. The complete handbook of centrifugal casting. NY: Tab Books; 1981
  • Stefanescu D. Science and Engineering of Casting Solidification. Berlin: Springer; 2002
  • Yang TH, Miyoshi H, Ohshima N. Novel cell immobilization method utilizing centrifugal force to achieve high-density hepatocyte culture in porous scaffold. J Biomed Mater Res 2001;55:379-86
  • Dar A, Shachar M, Leor J, Cohen S. Optimization of cardiac cell seeding and distribution in 3D porous alginate scaffolds. Biotechnol Bioeng 2002;80:305-12
  • Roh JD, Nelson GN, Udelsman BV, et al. Centrifugal seeding increases seeding efficiency and cellular distribution of bone marrow stromal cells in porous biodegradable scaffolds. Tissue Eng 2007;13:2743-9
  • Godbey WT, Hindy SB, Sherman ME, Atala A. A novel use of centrifugal force for cell seeding into porous scaffolds. Biomaterials 2004;25:2799-805
  • Dalton PD, Flynn L, Shoichet MS. Manufacture of poly(2-hydroxyethyl methacrylate-co-methyl methacrylate) hydrogel tubes for use as nerve guidance channels. Biomaterials 2002;23:3843-51
  • Dalton PD, Shoichet MS. Creating porous tubes by centrifugal forces for soft tissue application. Biomaterials 2001;22:2661-9
  • Midha R, Munro CA, Dalton PD, et al. Growth factor enhancement of peripheral nerve regeneration through a novel synthetic hydrogel tube. J Neurosurg 2003;99:555-65
  • Shu XZ, Liu Y, Luo Y, et al. Disulfide cross-linked hyaluronan hydrogels. Biomacromolecules 2002;3:1304-11
  • Liu Y, Shu XZ, Gray SD, Prestwich GD. Disulfide-crosslinked hyaluronan-gelatin sponge: growth of fibrous tissue in vivo. J Biomed Mater Res A 2004;68:142-9
  • Liu Y, Zheng Shu X, Prestwich GD. Biocompatibility and stability of disulfide-crosslinked hyaluronan films. Biomaterials 2005;26:4737-46
  • Park AH, Hughes CW, Jackson A, et al. Crosslinked hydrogels for tympanic membrane repair. Otolaryngol Head Neck Surg 2006;135:877-83
  • Shu XZ, Ahmad S, Liu Y, Prestwich GD. Synthesis and evaluation of injectable, in situ crosslinkable synthetic extracellular matrices for tissue engineering. J Biomed Mater Res A 2006;79:902-12
  • Shu XZ, Ghosh K, Liu Y, et al. Attachment and spreading of fibroblasts on an RGD peptide-modified injectable hyaluronan hydrogel. J Biomed Mater Res A 2004;68:365-75
  • Shu XZ, Liu Y, Palumbo F, Prestwich GD. Disulfide-crosslinked hyaluronan-gelatin hydrogel films: a covalent mimic of the extracellular matrix for in vitro cell growth. Biomaterials 2003;24:3825-34
  • Shu XZ, Liu Y, Palumbo FS, et al. In situ crosslinkable hyaluronan hydrogels for tissue engineering. Biomaterials 2004;25:1339-48
  • Ghosh K, Ren XD, Shu XZ, et al. Fibronectin functional domains coupled to hyaluronan stimulate adult human dermal fibroblast responses critical for wound healing. Tissue Eng 2006;12:601-13
  • Peattie RA, Nayate AP, Firpo MA, et al. Stimulation of in vivo angiogenesis by cytokine-loaded hyaluronic acid hydrogel implants. Biomaterials 2004;25:2789-98
  • Peattie RA, Rieke ER, Hewett EM, et al. Dual growth factor-induced angiogenesis in vivo using hyaluronan hydrogel implants. Biomaterials 2006;27:1868-75
  • Pike DB, Cai S, Pomraning KR, et al. Heparin-regulated release of growth factors in vitro and angiogenic response in vivo to implanted hyaluronan hydrogels containing VEGF and bFGF. Biomaterials 2006;27:5242-51
  • Flynn L, Prestwich GD, Semple JL, Woodhouse KA. Adipose tissue engineering with naturally derived scaffolds and adipose-derived stem cells. Biomaterials 2007;28:3834-42
  • Liu Y, Shu XZ, Prestwich GD. Osteochondral defect repair with autologous bone marrow-derived mesenchymal stem cells in an injectable, in situ, cross-linked synthetic extracellular matrix. Tissue Eng 2006;12:3405-16
  • Prestwich GD. Evaluating drug toxicity and efficacy in three dimensions: using synthetic extracellular matrices in drug discovery. Acc Chem Res 2007;In Press
  • Serban MA, Liu Y, Prestwich GD. Effects of synthetic extracellular matrices on primary human fibroblast behavior. Acta Biomaterialia 2008;4:75-6
  • Prestwich GD. Simplifying the extracellular matrix for 3-D cell culture and tissue engineering: a pragmatic approach. J Cell Biochem 2007;101:1370-83
  • Martin I, Dozin B, Quarto R, et al. Computer-based technique for cell aggregation analysis and cell aggregation in in vitro chondrogenesis. Cytometry 1997;28:141-6
  • Torquato S, Truskett TM, Debenedetti PG. Is random close packing of spheres well defined? Phys Rev Lett 2000;84:2064-7
  • Mironov V, Kasyanov V, Zheng Shu X, et al. Fabrication of tubular tissue constructs by centrifugal casting of cells suspended in an in situ crosslinkable hyaluronan-gelatin hydrogel. Biomaterials 2005;26:7628-35
  • Bergmeister H, Boeck P, Kasimir MT, et al. Effect of laser perforation on the remodeling of acellular matrix grafts. J Biomed Mater Res B Appl Biomater 2005;74:495-503
  • Gupta BS, Kasyanov VA. Biomechanics of human common carotid artery and design of novel hybrid textile compliant vascular grafts. J Biomed Mater Res 1997;34:341-9
  • Liu Y, Shu XZ, Prestwich GD. Reduced postoperative intra-abdominal adhesions using Carbylan-SX, a semisynthetic glycosaminoglycan hydrogel. Fertil Steril 2007;87:940-8
  • Dahl SL, Rucker RB, Niklason LE. Effects of copper and cross-linking on the extracellular matrix of tissue-engineered arteries. Cell Transplant 2005;14:861-8
  • Elbjeirami WM, Yonter EO, Starcher BC, West JL. Enhancing mechanical properties of tissue-engineered constructs via lysyl oxidase crosslinking activity. J Biomed Mater Res A 2003;66:513-21
  • Lau YK, Gobin AM, West JL. Overexpression of lysyl oxidase to increase matrix crosslinking and improve tissue strength in dermal wound healing. Ann Biomed Eng 2006;34:1239-46
  • Girton TS, Oegema TR, Grassl ED, et al. Mechanisms of stiffening and strengthening in media-equivalents fabricated using glycation. J Biomech Eng 2000;122:216-23
  • Girton TS, Oegema TR, Tranquillo RT. Exploiting glycation to stiffen and strengthen tissue equivalents for tissue engineering. J Biomed Mater Res 1999;46:87-92
  • Norris RA, Damon B, Mironov V, et al. Periostin regulates collagen fibrillogenesis and the biomechanical properties of connective tissues. J Cell Biochem 2007;101:695-711
  • Kar K, Amin P, Bryan MA, et al. Self-association of collagen triple helic peptides into higher order structures. J Biol Chem 2006;281:33283-90
  • Kotch FW, Raines RT. Self-assembly of synthetic collagen triple helices. Proc Natl Acad Sci USA 2006;103:3028-33
  • Strasser S, Zink A, Heckl WM, Thalhammer S. Controlled self-assembly of collagen fibrils by an automated dialysis system. J Biomech Eng 2006;128:792-6
  • Goldenberg J, Mazursky D. Creativity in product innovation. Cambridge: CUP; 2002
  • Rees J. The problem with academic medicine: engineering our way into and out of the mess. PLoS Med 2005;2:277-9

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.